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Future increase in compound soil drought-heat extremes exacerbated by vegetation greening

Author

Listed:
  • Jun Li

    (Peking University)

  • Yao Zhang

    (Peking University)

  • Emanuele Bevacqua

    (Helmholtz Centre for Environmental Research–UFZ)

  • Jakob Zscheischler

    (Helmholtz Centre for Environmental Research–UFZ)

  • Trevor F. Keenan

    (Lawrence Berkeley National Laboratory
    UC Berkeley)

  • Xu Lian

    (Columbia University)

  • Sha Zhou

    (Beijing Normal University)

  • Hongying Zhang

    (Peking University)

  • Mingzhu He

    (Peking University
    Beijing Normal University)

  • Shilong Piao

    (Peking University)

Abstract

Compound soil drought and heat extremes are expected to occur more frequently with global warming, causing wide-ranging socio-ecological repercussions. Vegetation modulates air temperature and soil moisture through biophysical processes, thereby influencing the occurrence of such extremes. Global vegetation cover is broadly expected to increase under climate change, but it remains unclear whether vegetation greening will alleviate or aggravate future increases in compound soil drought-heat events. Here, using a suite of state-of-the-art model simulations, we show that the projected vegetation greening will increase the frequency of global compound soil drought-heat events, equivalent to 12–21% of the total increment at the end of 21st century. This increase is predominantly driven by reduced albedo and enhanced transpiration associated with increased leaf area. Although greening-induced transpiration enhancement has counteracting cooling and drying effects, the excessive water loss in the early growing season can lead to later soil moisture deficits, amplifying compound soil drought-heat extremes during the subsequent warm season. These changes are most pronounced in northern high latitudes and are dominated by the warming effect of CO2. Our study highlights the necessity of integrating vegetation biophysical effects into mitigation and adaptation strategies for addressing compound climate risks.

Suggested Citation

  • Jun Li & Yao Zhang & Emanuele Bevacqua & Jakob Zscheischler & Trevor F. Keenan & Xu Lian & Sha Zhou & Hongying Zhang & Mingzhu He & Shilong Piao, 2024. "Future increase in compound soil drought-heat extremes exacerbated by vegetation greening," Nature Communications, Nature, vol. 15(1), pages 1-12, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-55175-0
    DOI: 10.1038/s41467-024-55175-0
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    as
    1. Zhonghua Zheng & Lei Zhao & Keith W. Oleson, 2021. "Large model structural uncertainty in global projections of urban heat waves," Nature Communications, Nature, vol. 12(1), pages 1-9, December.
    2. Xiyan Xu & William J. Riley & Charles D. Koven & Gensuo Jia & Xiaoyan Zhang, 2020. "Earlier leaf-out warms air in the north," Nature Climate Change, Nature, vol. 10(4), pages 370-375, April.
    3. Aiguo Dai, 2013. "Increasing drought under global warming in observations and models," Nature Climate Change, Nature, vol. 3(1), pages 52-58, January.
    4. Gerald A. Meehl & Haiyan Teng & Julie M. Arblaster, 2014. "Climate model simulations of the observed early-2000s hiatus of global warming," Nature Climate Change, Nature, vol. 4(10), pages 898-902, October.
    5. Ramdane Alkama & Giovanni Forzieri & Gregory Duveiller & Giacomo Grassi & Shunlin Liang & Alessandro Cescatti, 2022. "Vegetation-based climate mitigation in a warmer and greener World," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    6. Tara Hudiburg & Justin Mathias & Kristina Bartowitz & Danielle M. Berardi & Kelsey Bryant & Emily Graham & Crystal A. Kolden & Richard A. Betts & Laurel Lynch, 2023. "Terrestrial carbon dynamics in an era of increasing wildfire," Nature Climate Change, Nature, vol. 13(12), pages 1306-1316, December.
    7. Wolfgang Buermann & Matthias Forkel & Michael O’Sullivan & Stephen Sitch & Pierre Friedlingstein & Vanessa Haverd & Atul K. Jain & Etsushi Kato & Markus Kautz & Sebastian Lienert & Danica Lombardozzi , 2018. "Widespread seasonal compensation effects of spring warming on northern plant productivity," Nature, Nature, vol. 562(7725), pages 110-114, October.
    8. Aiguo Dai, 2011. "Drought under global warming: a review," Wiley Interdisciplinary Reviews: Climate Change, John Wiley & Sons, vol. 2(1), pages 45-65, January.
    9. Giovanni Forzieri & Diego G. Miralles & Philippe Ciais & Ramdane Alkama & Youngryel Ryu & Gregory Duveiller & Ke Zhang & Eddy Robertson & Markus Kautz & Brecht Martens & Chongya Jiang & Almut Arneth &, 2020. "Increased control of vegetation on global terrestrial energy fluxes," Nature Climate Change, Nature, vol. 10(4), pages 356-362, April.
    10. Yitao Li & Zhao-Liang Li & Hua Wu & Chenghu Zhou & Xiangyang Liu & Pei Leng & Peng Yang & Wenbin Wu & Ronglin Tang & Guo-Fei Shang & Lingling Ma, 2023. "Biophysical impacts of earth greening can substantially mitigate regional land surface temperature warming," Nature Communications, Nature, vol. 14(1), pages 1-12, December.
    11. Aiguo Dai, 2013. "Erratum: Increasing drought under global warming in observations and models," Nature Climate Change, Nature, vol. 3(2), pages 171-171, February.
    12. William R. L. Anderegg & Jeffrey M. Kane & Leander D. L. Anderegg, 2013. "Consequences of widespread tree mortality triggered by drought and temperature stress," Nature Climate Change, Nature, vol. 3(1), pages 30-36, January.
    13. Dißmann, J. & Brechmann, E.C. & Czado, C. & Kurowicka, D., 2013. "Selecting and estimating regular vine copulae and application to financial returns," Computational Statistics & Data Analysis, Elsevier, vol. 59(C), pages 52-69.
    14. Marcell K. Peters & Andreas Hemp & Tim Appelhans & Joscha N. Becker & Christina Behler & Alice Classen & Florian Detsch & Andreas Ensslin & Stefan W. Ferger & Sara B. Frederiksen & Friederike Gebert &, 2019. "Climate–land-use interactions shape tropical mountain biodiversity and ecosystem functions," Nature, Nature, vol. 568(7750), pages 88-92, April.
    15. David Gampe & Jakob Zscheischler & Markus Reichstein & Michael O’Sullivan & William K. Smith & Stephen Sitch & Wolfgang Buermann, 2021. "Increasing impact of warm droughts on northern ecosystem productivity over recent decades," Nature Climate Change, Nature, vol. 11(9), pages 772-779, September.
    16. Sebastiaan Luyssaert & Mathilde Jammet & Paul C. Stoy & Stephan Estel & Julia Pongratz & Eric Ceschia & Galina Churkina & Axel Don & KarlHeinz Erb & Morgan Ferlicoq & Bert Gielen & Thomas Grünwald & R, 2014. "Land management and land-cover change have impacts of similar magnitude on surface temperature," Nature Climate Change, Nature, vol. 4(5), pages 389-393, May.
    17. Gonzalo Miguez-Macho & Ying Fan, 2021. "Spatiotemporal origin of soil water taken up by vegetation," Nature, Nature, vol. 598(7882), pages 624-628, October.
    18. Trevor F. Keenan & David Y. Hollinger & Gil Bohrer & Danilo Dragoni & J. William Munger & Hans Peter Schmid & Andrew D. Richardson, 2013. "Increase in forest water-use efficiency as atmospheric carbon dioxide concentrations rise," Nature, Nature, vol. 499(7458), pages 324-327, July.
    19. Emanuele Bevacqua & Laura Suarez-Gutierrez & Aglaé Jézéquel & Flavio Lehner & Mathieu Vrac & Pascal Yiou & Jakob Zscheischler, 2023. "Advancing research on compound weather and climate events via large ensemble model simulations," Nature Communications, Nature, vol. 14(1), pages 1-16, December.
    20. Megan D. Fowler & Gabriel J. Kooperman & James T. Randerson & Michael S. Pritchard, 2019. "The effect of plant physiological responses to rising CO2 on global streamflow," Nature Climate Change, Nature, vol. 9(11), pages 873-879, November.
    21. Salvatore Fasola & Vito M. R. Muggeo & Helmut Küchenhoff, 2018. "A heuristic, iterative algorithm for change-point detection in abrupt change models," Computational Statistics, Springer, vol. 33(2), pages 997-1015, June.
    22. Mahshid Ghanbari & Mazdak Arabi & Matei Georgescu & Ashley M. Broadbent, 2023. "The role of climate change and urban development on compound dry-hot extremes across US cities," Nature Communications, Nature, vol. 14(1), pages 1-12, December.
    23. Vincent Humphrey & Alexis Berg & Philippe Ciais & Pierre Gentine & Martin Jung & Markus Reichstein & Sonia I. Seneviratne & Christian Frankenberg, 2021. "Soil moisture–atmosphere feedback dominates land carbon uptake variability," Nature, Nature, vol. 592(7852), pages 65-69, April.
    24. Zhenzhong Zeng & Shilong Piao & Laurent Z. X. Li & Liming Zhou & Philippe Ciais & Tao Wang & Yue Li & Xu Lian & Eric F. Wood & Pierre Friedlingstein & Jiafu Mao & Lyndon D. Estes & Ranga B. Myneni & S, 2017. "Climate mitigation from vegetation biophysical feedbacks during the past three decades," Nature Climate Change, Nature, vol. 7(6), pages 432-436, June.
    25. Jiabo Yin & Pierre Gentine & Louise Slater & Lei Gu & Yadu Pokhrel & Naota Hanasaki & Shenglian Guo & Lihua Xiong & Wolfram Schlenker, 2023. "Future socio-ecosystem productivity threatened by compound drought–heatwave events," Nature Sustainability, Nature, vol. 6(3), pages 259-272, March.
    26. Emanuele Bevacqua & Giuseppe Zappa & Flavio Lehner & Jakob Zscheischler, 2022. "Precipitation trends determine future occurrences of compound hot–dry events," Nature Climate Change, Nature, vol. 12(4), pages 350-355, April.
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